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Development of double porous poly (ε - caprolactone)/chitosan polymer as tissue engineering scaffold

机译:双层多孔聚(ε-己内酯)/壳聚糖聚合物作为组织工程支架的开发

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Polymer blend made from poly(epsilon - caprolactone)/chitosan (PCL/CHT) offers interesting opportunities for biological applications. The paper presents a new way to fabricate PCL/CHT double-porosity (macrovoids with interconnected microporosity) membrane materials from a chemical optimization of the solvent and non-solvent phases and from a modified phase inversion technique. By varying the PCL/CHT proportion, it is shown that it is possible to improve the chemical and physical properties of the CHT carbohydrate polymer. The PCL/CHT membranes are fully characterized in term of physico-chemical properties (ATR-FTIR, XRD and DSC) to understand the miscibility of the two-polymer blend. Morphological characterization by SEM shows that by increasing CHT wt% in the blend, the size of the macrovoids was increasing. Rapid enzymatic degradation of PCL from all the blend was found by using lipase (from P. cepacia). The mechanisms at the origin of the morphological structuration of the material is also discussed. To test the ability to operate these materials as small diameter vascular scaffolds, cell culture with human umbilical vein endothelial cells (HUVECs) were carried out on the membrane and the results analyzed with laser scanning confocal microscopy (LSCM). Data suggest that the blend membrane with higher concentration of CHT polymer wt% have suitable properties that promote high number of cells on the surface by maintaining cellular cytoskeleton integrity within 3 days. The blend membrane with a double porous morphology could be potentially applicable in future for small diameter vascular graft application. The surface macrovoids (20-90 mu m) could be useful for three-dimensional cellular adhesion and proliferation and interconnected microporous spongy network (7-20 mu m) is expected to transfer essential nutrients, oxygen, growth factor between the macrovoids and the supernatant.
机译:由聚(ε-己内酯)/壳聚糖(PCL / CHT)制成的聚合物共混物为生物学应用提供了有趣的机会。本文提出了一种通过化学优化溶剂相和非溶剂相以及采用改进的相转化技术来制备PCL / CHT双孔(微孔互连的微孔)膜材料的新方法。通过改变PCL / CHT比例,显示出可以改善CHT碳水化合物聚合物的化学和物理性质。 PCL / CHT膜在理化特性(ATR-FTIR,XRD和DSC)方面具有充分的特征,可以理解两种聚合物共混物的混溶性。 SEM的形态学表征表明,通过增加共混物中CHT的重量%,大孔的尺寸增加。通过使用脂肪酶(来自洋葱伯克霍尔德氏菌)发现了PCL从所有混合物中快速酶促降解。还讨论了材料形态结构起源的机理。为了测试将这些材料用作小直径血管支架的能力,在膜上进行了人脐静脉内皮细胞(HUVEC)的细胞培养,并通过激光扫描共聚焦显微镜(LSCM)分析了结果。数据表明,具有较高浓度的CHT聚合物wt%的共混膜具有合适的特性,可通过在3天内保持细胞骨架的完整性来促进表面上大量细胞的生长。具有双重多孔形态的共混膜将来可能潜在地适用于小直径血管移植物的应用。表面大孔(20-90μm)可用于三维细胞粘附和增殖,互连的微孔海绵状网络(7-20μm)有望在大孔和上清液之间转移基本的养分,氧气,生长因子。

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